TSTP Solution File: MGT029-1 by Otter---3.3

View Problem - Process Solution

%------------------------------------------------------------------------------
% File     : Otter---3.3
% Problem  : MGT029-1 : TPTP v8.1.0. Released v2.4.0.
% Transfm  : none
% Format   : tptp:raw
% Command  : otter-tptp-script %s

% Computer : n023.cluster.edu
% Model    : x86_64 x86_64
% CPU      : Intel(R) Xeon(R) CPU E5-2620 v4 2.10GHz
% Memory   : 8042.1875MB
% OS       : Linux 3.10.0-693.el7.x86_64
% CPULimit : 300s
% WCLimit  : 300s
% DateTime : Wed Jul 27 13:06:04 EDT 2022

% Result   : Unknown 228.83s 229.06s
% Output   : None 
% Verified : 
% SZS Type : -

% Comments : 
%------------------------------------------------------------------------------
%----No solution output by system
%------------------------------------------------------------------------------
%----ORIGINAL SYSTEM OUTPUT
% 0.11/0.11  % Problem  : MGT029-1 : TPTP v8.1.0. Released v2.4.0.
% 0.11/0.12  % Command  : otter-tptp-script %s
% 0.12/0.33  % Computer : n023.cluster.edu
% 0.12/0.33  % Model    : x86_64 x86_64
% 0.12/0.33  % CPU      : Intel(R) Xeon(R) CPU E5-2620 v4 @ 2.10GHz
% 0.12/0.33  % Memory   : 8042.1875MB
% 0.12/0.33  % OS       : Linux 3.10.0-693.el7.x86_64
% 0.12/0.33  % CPULimit : 300
% 0.12/0.33  % WCLimit  : 300
% 0.12/0.33  % DateTime : Wed Jul 27 04:22:18 EDT 2022
% 0.12/0.33  % CPUTime  : 
% 1.97/2.15  ----- Otter 3.3f, August 2004 -----
% 1.97/2.15  The process was started by sandbox on n023.cluster.edu,
% 1.97/2.15  Wed Jul 27 04:22:18 2022
% 1.97/2.15  The command was "./otter".  The process ID is 9587.
% 1.97/2.15  
% 1.97/2.15  set(prolog_style_variables).
% 1.97/2.15  set(auto).
% 1.97/2.15     dependent: set(auto1).
% 1.97/2.15     dependent: set(process_input).
% 1.97/2.15     dependent: clear(print_kept).
% 1.97/2.15     dependent: clear(print_new_demod).
% 1.97/2.15     dependent: clear(print_back_demod).
% 1.97/2.15     dependent: clear(print_back_sub).
% 1.97/2.15     dependent: set(control_memory).
% 1.97/2.15     dependent: assign(max_mem, 12000).
% 1.97/2.15     dependent: assign(pick_given_ratio, 4).
% 1.97/2.15     dependent: assign(stats_level, 1).
% 1.97/2.15     dependent: assign(max_seconds, 10800).
% 1.97/2.15  clear(print_given).
% 1.97/2.15  
% 1.97/2.15  list(usable).
% 1.97/2.15  0 [] A=A.
% 1.97/2.15  0 [] -greater(A,B)| -greater(B,C)|greater(A,C).
% 1.97/2.15  0 [] -in_environment(A,B)| -in_environment(A,C)|greater(C,B)|C=B|greater(B,C).
% 1.97/2.15  0 [] -greater_or_e_qual(A,B)|greater(A,B)|A=B.
% 1.97/2.15  0 [] -greater(A,B)|greater_or_e_qual(A,B).
% 1.97/2.15  0 [] A!=B|greater_or_e_qual(A,B).
% 1.97/2.15  0 [] -environment(A)| -subpopulations(first_movers,efficient_producers,A,B)| -greater_or_e_qual(B,e_quilibrium(A))|growth_rate(first_movers,B)=zero|greater(growth_rate(first_movers,B),zero)|greater(growth_rate(efficient_producers,B),zero).
% 1.97/2.16  0 [] -environment(A)| -subpopulations(first_movers,efficient_producers,A,B)| -greater_or_e_qual(B,e_quilibrium(A))|growth_rate(first_movers,B)=zero|greater(growth_rate(first_movers,B),zero)|greater(zero,growth_rate(first_movers,B)).
% 1.97/2.16  0 [] -environment(A)| -subpopulations(first_movers,efficient_producers,A,B)| -greater_or_e_qual(B,e_quilibrium(A))|growth_rate(first_movers,B)=zero|greater(zero,growth_rate(efficient_producers,B))|greater(growth_rate(efficient_producers,B),zero).
% 1.97/2.16  0 [] -environment(A)| -subpopulations(first_movers,efficient_producers,A,B)| -greater_or_e_qual(B,e_quilibrium(A))|growth_rate(first_movers,B)=zero|greater(zero,growth_rate(efficient_producers,B))|greater(zero,growth_rate(first_movers,B)).
% 1.97/2.16  0 [] -environment(A)| -subpopulations(first_movers,efficient_producers,A,B)| -greater_or_e_qual(B,e_quilibrium(A))|growth_rate(efficient_producers,B)=zero|greater(growth_rate(first_movers,B),zero)|greater(growth_rate(efficient_producers,B),zero).
% 1.97/2.16  0 [] -environment(A)| -subpopulations(first_movers,efficient_producers,A,B)| -greater_or_e_qual(B,e_quilibrium(A))|growth_rate(efficient_producers,B)=zero|greater(growth_rate(first_movers,B),zero)|greater(zero,growth_rate(first_movers,B)).
% 1.97/2.16  0 [] -environment(A)| -subpopulations(first_movers,efficient_producers,A,B)| -greater_or_e_qual(B,e_quilibrium(A))|growth_rate(efficient_producers,B)=zero|greater(zero,growth_rate(efficient_producers,B))|greater(growth_rate(efficient_producers,B),zero).
% 1.97/2.16  0 [] -environment(A)| -subpopulations(first_movers,efficient_producers,A,B)| -greater_or_e_qual(B,e_quilibrium(A))|growth_rate(efficient_producers,B)=zero|greater(zero,growth_rate(efficient_producers,B))|greater(zero,growth_rate(first_movers,B)).
% 1.97/2.16  0 [] -environment(A)| -stable(A)|in_environment(A,sk1(A)).
% 1.97/2.16  0 [] -environment(A)| -stable(A)| -subpopulations(first_movers,efficient_producers,A,B)| -greater_or_e_qual(B,sk1(A))|greater(growth_rate(efficient_producers,B),growth_rate(first_movers,B)).
% 1.97/2.16  0 [] -environment(A)| -stable(A)|in_environment(A,sk2(A)).
% 1.97/2.16  0 [] -environment(A)| -stable(A)|greater_or_e_qual(sk2(A),e_quilibrium(A)).
% 1.97/2.16  0 [] environment(sk3).
% 1.97/2.16  0 [] stable(sk3).
% 1.97/2.16  0 [] -in_environment(sk3,A)|subpopulations(first_movers,efficient_producers,sk3,sk4(A)).
% 1.97/2.16  0 [] -in_environment(sk3,A)|greater_or_e_qual(sk4(A),A).
% 1.97/2.16  0 [] -in_environment(sk3,A)| -greater(growth_rate(efficient_producers,sk4(A)),zero)| -greater(zero,growth_rate(first_movers,sk4(A))).
% 1.97/2.16  end_of_list.
% 1.97/2.16  
% 1.97/2.16  SCAN INPUT: prop=0, horn=0, equality=1, symmetry=0, max_lits=6.
% 1.97/2.16  
% 1.97/2.16  This ia a non-Horn set with equality.  The strategy will be
% 1.97/2.16  Knuth-Bendix, ordered hyper_res, factoring, and unit
% 1.97/2.16  deletion, with positive clauses in sos and nonpositive
% 1.97/2.16  clauses in usable.
% 1.97/2.16  
% 1.97/2.16     dependent: set(knuth_bendix).
% 1.97/2.16     dependent: set(anl_eq).
% 1.97/2.16     dependent: set(para_from).
% 1.97/2.16     dependent: set(para_into).
% 1.97/2.16     dependent: clear(para_from_right).
% 1.97/2.16     dependent: clear(para_into_right).
% 1.97/2.16     dependent: set(para_from_vars).
% 1.97/2.16     dependent: set(eq_units_both_ways).
% 228.83/229.06     dependent: set(dynamic_demod_all).
% 228.83/229.06     dependent: set(dynamic_demod).
% 228.83/229.06     dependent: set(order_eq).
% 228.83/229.06     dependent: set(back_demod).
% 228.83/229.06     dependent: set(lrpo).
% 228.83/229.06     dependent: set(hyper_res).
% 228.83/229.06     dependent: set(unit_deletion).
% 228.83/229.06     dependent: set(factor).
% 228.83/229.06  
% 228.83/229.06  ------------> process usable:
% 228.83/229.06  ** KEPT (pick-wt=9): 1 [] -greater(A,B)| -greater(B,C)|greater(A,C).
% 228.83/229.06  ** KEPT (pick-wt=15): 2 [] -in_environment(A,B)| -in_environment(A,C)|greater(C,B)|C=B|greater(B,C).
% 228.83/229.06  ** KEPT (pick-wt=9): 3 [] -greater_or_e_qual(A,B)|greater(A,B)|A=B.
% 228.83/229.06  ** KEPT (pick-wt=6): 4 [] -greater(A,B)|greater_or_e_qual(A,B).
% 228.83/229.06  ** KEPT (pick-wt=6): 5 [] A!=B|greater_or_e_qual(A,B).
% 228.83/229.06  ** KEPT (pick-wt=26): 6 [] -environment(A)| -subpopulations(first_movers,efficient_producers,A,B)| -greater_or_e_qual(B,e_quilibrium(A))|growth_rate(first_movers,B)=zero|greater(growth_rate(first_movers,B),zero)|greater(growth_rate(efficient_producers,B),zero).
% 228.83/229.06  ** KEPT (pick-wt=26): 7 [] -environment(A)| -subpopulations(first_movers,efficient_producers,A,B)| -greater_or_e_qual(B,e_quilibrium(A))|growth_rate(first_movers,B)=zero|greater(growth_rate(first_movers,B),zero)|greater(zero,growth_rate(first_movers,B)).
% 228.83/229.06  ** KEPT (pick-wt=26): 8 [] -environment(A)| -subpopulations(first_movers,efficient_producers,A,B)| -greater_or_e_qual(B,e_quilibrium(A))|growth_rate(first_movers,B)=zero|greater(zero,growth_rate(efficient_producers,B))|greater(growth_rate(efficient_producers,B),zero).
% 228.83/229.06  ** KEPT (pick-wt=26): 9 [] -environment(A)| -subpopulations(first_movers,efficient_producers,A,B)| -greater_or_e_qual(B,e_quilibrium(A))|growth_rate(first_movers,B)=zero|greater(zero,growth_rate(efficient_producers,B))|greater(zero,growth_rate(first_movers,B)).
% 228.83/229.06  ** KEPT (pick-wt=26): 10 [] -environment(A)| -subpopulations(first_movers,efficient_producers,A,B)| -greater_or_e_qual(B,e_quilibrium(A))|growth_rate(efficient_producers,B)=zero|greater(growth_rate(first_movers,B),zero)|greater(growth_rate(efficient_producers,B),zero).
% 228.83/229.06  ** KEPT (pick-wt=26): 11 [] -environment(A)| -subpopulations(first_movers,efficient_producers,A,B)| -greater_or_e_qual(B,e_quilibrium(A))|growth_rate(efficient_producers,B)=zero|greater(growth_rate(first_movers,B),zero)|greater(zero,growth_rate(first_movers,B)).
% 228.83/229.06  ** KEPT (pick-wt=26): 12 [] -environment(A)| -subpopulations(first_movers,efficient_producers,A,B)| -greater_or_e_qual(B,e_quilibrium(A))|growth_rate(efficient_producers,B)=zero|greater(zero,growth_rate(efficient_producers,B))|greater(growth_rate(efficient_producers,B),zero).
% 228.83/229.06  ** KEPT (pick-wt=26): 13 [] -environment(A)| -subpopulations(first_movers,efficient_producers,A,B)| -greater_or_e_qual(B,e_quilibrium(A))|growth_rate(efficient_producers,B)=zero|greater(zero,growth_rate(efficient_producers,B))|greater(zero,growth_rate(first_movers,B)).
% 228.83/229.06  ** KEPT (pick-wt=8): 14 [] -environment(A)| -stable(A)|in_environment(A,sk1(A)).
% 228.83/229.06  ** KEPT (pick-wt=20): 15 [] -environment(A)| -stable(A)| -subpopulations(first_movers,efficient_producers,A,B)| -greater_or_e_qual(B,sk1(A))|greater(growth_rate(efficient_producers,B),growth_rate(first_movers,B)).
% 228.83/229.06  ** KEPT (pick-wt=8): 16 [] -environment(A)| -stable(A)|in_environment(A,sk2(A)).
% 228.83/229.06  ** KEPT (pick-wt=9): 17 [] -environment(A)| -stable(A)|greater_or_e_qual(sk2(A),e_quilibrium(A)).
% 228.83/229.06  ** KEPT (pick-wt=9): 18 [] -in_environment(sk3,A)|subpopulations(first_movers,efficient_producers,sk3,sk4(A)).
% 228.83/229.06  ** KEPT (pick-wt=7): 19 [] -in_environment(sk3,A)|greater_or_e_qual(sk4(A),A).
% 228.83/229.06  ** KEPT (pick-wt=15): 20 [] -in_environment(sk3,A)| -greater(growth_rate(efficient_producers,sk4(A)),zero)| -greater(zero,growth_rate(first_movers,sk4(A))).
% 228.83/229.06  
% 228.83/229.06  ------------> process sos:
% 228.83/229.06  ** KEPT (pick-wt=3): 22 [] A=A.
% 228.83/229.06  ** KEPT (pick-wt=2): 23 [] environment(sk3).
% 228.83/229.06  ** KEPT (pick-wt=2): 24 [] stable(sk3).
% 228.83/229.06    Following clause subsumed by 22 during input processing: 0 [copy,22,flip.1] A=A.
% 228.83/229.06  22 back subsumes 21.
% 228.83/229.06  
% 228.83/229.06  ======= end of input processing =======
% 228.83/229.06  
% 228.83/229.06  =========== start of search ===========
% 228.83/229.06  
% 228.83/229.06  
% 228.83/229.06  Resetting weight limit to 18.
% 228.83/229.06  
% 228.83/229.06  
% 228.83/229.06  Resetting weight limit to 18.
% 228.83/229.06  
% 228.83/229.06  sos_size=3030
% 228.83/229.06  
% 228.83/229.06  Search stopped because sos empty.
% 228.83/229.06  
% 228.83/229.06  
% 228.83/229.06  Search stopped because sos empty.
% 228.83/229.06  
% 228.83/229.06  ============ end of search ============
% 228.83/229.06  
% 228.83/229.06  -------------- statistics -------------
% 228.83/229.06  clauses given               3262
% 228.83/229.06  clauses generated        1852913
% 228.83/229.06  clauses kept                3538
% 228.83/229.06  clauses forward subsumed   13356
% 228.83/229.06  clauses back subsumed        317
% 228.83/229.06  Kbytes malloced             5859
% 228.83/229.06  
% 228.83/229.06  ----------- times (seconds) -----------
% 228.83/229.06  user CPU time        226.90          (0 hr, 3 min, 46 sec)
% 228.83/229.06  system CPU time        0.01          (0 hr, 0 min, 0 sec)
% 228.83/229.06  wall-clock time      229             (0 hr, 3 min, 49 sec)
% 228.83/229.06  
% 228.83/229.06  Process 9587 finished Wed Jul 27 04:26:07 2022
% 228.83/229.06  Otter interrupted
% 228.83/229.06  PROOF NOT FOUND
%------------------------------------------------------------------------------